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On the diversity of giant planets—Simulating the evolution of solids in protoplanetary disks

机译:关于巨型行星的多样性—模拟原行星盘中固体的演化

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We describe a model designed to track simultaneously the evolution of gas and solids in protoplanetary disks from an early stage, when all solids are in the dust form, to the stage when most solids are in the form of a planetesimal swarm. The model is computationally efficient and allows for a global, comprehensive approach to the evolution of solid particles due to gas-solid coupling, coagulation, sedimentation, and evaporation/condensation. We have used it to calculate the co-evolution of gas and solids starting from a comprehensive domain of initial conditions. Then based on the core accretion-gas capture scenario, we have estimated the planet-bearing capability of the environment defined by the final planetesimal swarm and the still evolving gaseous component of the disk. We describe how the disk's capability of formation of giant planets depends on the initial mass and size of a protoplanetary disk, its thermal structure, mass of the central star and properties of the material forming solid grains.
机译:我们描述了一个模型,该模型旨在同时跟踪从所有固体呈粉尘状的早期到大多数固体呈行星状星团的阶段的原行星盘中气体和固体的演变。该模型的计算效率很高,并且由于气固耦合,凝结,沉降和蒸发/冷凝作用,因此可以采用全局,全面的方法来分析固体颗粒。我们已经使用它来计算从初始条件的综合域开始的气体和固体的共同演化。然后,根据核心的增生气捕获情景,我们估算了由最终的小行星群和仍在演化的气态成分所定义的环境的行星承载能力。我们描述了圆盘形成巨型行星的能力如何取决于原行星盘的初始质量和大小,其热结构,中心恒星的质量以及形成固体颗粒的材料的特性。

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